I'm using the following for a LIKE query. Is this technique for LIKE correct?
selectstmtSearch = nil;
if(selectstmtSearch == nil){
const char *sql = "SELECT col1, col2 FROM table1 t1 JOIN table2 t2 ON t1.cityid = t2.cityid where t1.cityname like ?001 order by t1.cityname";
if(sqlite3_prepare_v2(databaseSearch, sql, -1, &selectstmtSearch, NULL) == SQLITE_OK)
{
sqlite3_bind_text(selectstmtSearch, 1, [[NSString stringWithFormat:@"%%%@%%", searchText] UTF8String], -1, SQLITE_TRANSIENT);
}
}
The problem I'm having is after a few uses of this, I get an error 14 on sqlite3_open(), which is unable to open database. If I replace the LIKE with som开发者_StackOverflow中文版ething such as:
SELECT col1, col2
FROM table1 t1
JOIN table2 t2 ON t1.cityid = t2.cityid
where t1.cityname = ?
order by t1.cityname
It works fine. I do open/close the DB before after the above code. Is there a way to troubleshoot exactly why the database can't be opened and what its relationship to my LIKE syntax is?
You must sqlite3_reset
or sqlite3_finalize(selectstmtSearch)
before you close the database connection.
精彩评论